Literature DB >> 23907151

Next-generation sequencing-based multi-gene mutation profiling of solid tumors using fine needle aspiration samples: promises and challenges for routine clinical diagnostics.

Rashmi Kanagal-Shamanna1, Bryce P Portier1, Rajesh R Singh1, Mark J Routbort1, Kenneth D Aldape1, Brian A Handal1, Hamed Rahimi1, Neelima G Reddy1, Bedia A Barkoh1, Bal M Mishra1, Abhaya V Paladugu1, Jawad H Manekia1, Neda Kalhor1, Sinchita Roy Chowdhuri1, Gregg A Staerkel1, L Jeffrey Medeiros1, Rajyalakshmi Luthra1, Keyur P Patel1.   

Abstract

Increasing use of fine needle aspiration for oncological diagnosis, while minimally invasive, poses a challenge for molecular testing by traditional sequencing platforms due to high sample requirements. The advent of affordable benchtop next-generation sequencing platforms such as the semiconductor-based Ion Personal Genome Machine (PGM) Sequencer has facilitated multi-gene mutational profiling using only nanograms of DNA. We describe successful next-generation sequencing-based testing of fine needle aspiration cytological specimens in a clinical laboratory setting. We selected 61 tumor specimens, obtained by fine needle aspiration, with known mutational status for clinically relevant genes; of these, 31 specimens yielded sufficient DNA for next-generation sequencing testing. Ten nanograms of DNA from each sample was tested for mutations in the hotspot regions of 46 cancer-related genes using a 318-chip on Ion PGM Sequencer. All tested samples underwent successful targeted sequencing of 46 genes. We showed 100% concordance of results between next-generation sequencing and conventional test platforms for all previously known point mutations that included BRAF, EGFR, KRAS, MET, NRAS, PIK3CA, RET and TP53, deletions of EGFR and wild-type calls. Furthermore, next-generation sequencing detected variants in 19 of the 31 (61%) patient samples that were not detected by traditional platforms, thus increasing the utility of mutation analysis; these variants involved the APC, ATM, CDKN2A, CTNNB1, FGFR2, FLT3, KDR, KIT, KRAS, MLH1, NRAS, PIK3CA, SMAD4, STK11 and TP53 genes. The results of this study show that next-generation sequencing-based mutational profiling can be performed on fine needle aspiration cytological smears and cell blocks. Next-generation sequencing can be performed with only nanograms of DNA and has better sensitivity than traditional sequencing platforms. Use of next-generation sequencing also enhances the power of fine needle aspiration by providing gene mutation results that can direct personalized cancer therapy.

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Year:  2013        PMID: 23907151     DOI: 10.1038/modpathol.2013.122

Source DB:  PubMed          Journal:  Mod Pathol        ISSN: 0893-3952            Impact factor:   7.842


  54 in total

Review 1.  [Cytological material for molecular pathology].

Authors:  L C Heukamp; L Bubendorf
Journal:  Pathologe       Date:  2015-11       Impact factor: 1.011

2.  Concurrent fine needle aspirations and core needle biopsies: a comparative study of substrates for next-generation sequencing in solid organ malignancies.

Authors:  Sinchita Roy-Chowdhuri; Hui Chen; Rajesh R Singh; Savitri Krishnamurthy; Keyur P Patel; Mark J Routbort; Jawad Manekia; Bedia A Barkoh; Hui Yao; Sharjeel Sabir; Russell R Broaddus; L Jeffrey Medeiros; Gregg Staerkel; John Stewart; Rajyalakshmi Luthra
Journal:  Mod Pathol       Date:  2017-01-13       Impact factor: 7.842

3.  Clinical applicability and cost of a 46-gene panel for genomic analysis of solid tumours: Retrospective validation and prospective audit in the UK National Health Service.

Authors:  Angela Hamblin; Sarah Wordsworth; Jilles M Fermont; Suzanne Page; Kulvinder Kaur; Carme Camps; Pamela Kaisaki; Avinash Gupta; Denis Talbot; Mark Middleton; Shirley Henderson; Anthony Cutts; Dimitrios V Vavoulis; Nick Housby; Ian Tomlinson; Jenny C Taylor; Anna Schuh
Journal:  PLoS Med       Date:  2017-02-14       Impact factor: 11.069

4.  Feasibility of endobronchial ultrasound transbronchial needle aspiration for massively parallel next-generation sequencing in thoracic cancer patients.

Authors:  Simon R Turner; Darren Buonocore; Patrice Desmeules; Natasha Rekhtman; Snjezana Dogan; Oscar Lin; Maria E Arcila; David R Jones; James Huang
Journal:  Lung Cancer       Date:  2018-03-07       Impact factor: 5.705

5.  The use of endobronchial ultrasound guided transbronchial needle aspiration specimens for next generation sequencing in non-small cell lung cancer: a clinical perspective.

Authors:  Sean Stoy; Septimiu Murgu
Journal:  J Thorac Dis       Date:  2017-04       Impact factor: 2.895

Review 6.  Chronic granulomatous disease.

Authors:  Dirk Roos
Journal:  Br Med Bull       Date:  2016-03-16       Impact factor: 4.291

7.  Mutation Yield of a 34-Gene Solid Tumor Panel in Community-Based Tumor Samples.

Authors:  Heather Sanders; Kevin Qu; Hairong Li; Lin Ma; Cindy Barlan; Xi Zhang; James Prentice; David Wolfson; Beryl Crossley; Anthony Sferruzza; John Sninsky; David Ross; Andrew Grupe; Joseph Catanese; Feras Hantash; Frederic Waldman
Journal:  Mol Diagn Ther       Date:  2016-06       Impact factor: 4.074

8.  Effective quality management practices in routine clinical next-generation sequencing.

Authors:  Francine B de Abreu; Jason D Peterson; Christopher I Amos; Wendy A Wells; Gregory J Tsongalis
Journal:  Clin Chem Lab Med       Date:  2016-05       Impact factor: 3.694

9.  Utilization of ancillary studies in the cytologic diagnosis of respiratory lesions: The papanicolaou society of cytopathology consensus recommendations for respiratory cytology.

Authors:  Lester J Layfield; Sinchita Roy-Chowdhuri; Zubair Baloch; Hormoz Ehya; Kim Geisinger; Susan J Hsiao; Oscar Lin; Neal I Lindeman; Michael Roh; Fernando Schmitt; Nikoletta Sidiropoulos; Paul A VanderLaan
Journal:  Diagn Cytopathol       Date:  2016-08-26       Impact factor: 1.582

Review 10.  Thyroid C-Cell Biology and Oncogenic Transformation.

Authors:  Gilbert J Cote; Elizabeth G Grubbs; Marie-Claude Hofmann
Journal:  Recent Results Cancer Res       Date:  2015
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